Sekiguchi Toshio, Kawashima Takeshi, Satou Yutaka, Satoh Nori
Department of Zoology, Graduate School of Science, Kyoto University, Kyoto 606-8502, Japan.
Gen Comp Endocrinol. 2007 Jan 15;150(2):233-45. doi: 10.1016/j.ygcen.2006.08.010. Epub 2006 Oct 27.
Identification of orthologs of vertebrate neuropeptides and hypothalamic hormones in the neural complex of ascidians suggests integral roles of the ascidian neural complex in the endocrine system. In the present study, we investigated endocrine-related genes expressed in the neural complex of Ciona intestinalis. Comprehensive analyses of 3'-end sequences of the neural complex cDNAs placed 10,029 clones into 4051 independent clusters or genes, 1524 of them being expressed preferentially in this organ. Comparison of the 1524 genes with the human proteome databank demonstrated that 476 matched previously identified human proteins with distinct functions. Further analyses of sequence similarity of the 476 genes demonstrated that 21 genes are candidates for those involved in the endocrine system. Although we cannot detect hormone or peptide candidates, we found 21 genes such as receptors for peptide ligands, receptor-modulating proteins, and processing enzymes. We then characterized the Ciona prohormone convertase 2 (Ci-PC2) and carboxypeptidase E (Ci-CPE), which are associated with endoproteolytic processing of peptide hormone precursors. Furthermore, genes encoding these transcripts are expressed specifically in the neural complex of young adult ascidians. These data provide the molecular basis for further functional studies of the endocrine role of the neural complex of ascidians.
在海鞘神经复合体中鉴定脊椎动物神经肽和下丘脑激素的直系同源物,表明海鞘神经复合体在内分泌系统中发挥着不可或缺的作用。在本研究中,我们调查了在肠鳃纲动物神经复合体中表达的内分泌相关基因。对神经复合体cDNA的3'端序列进行综合分析,将10,029个克隆归入4051个独立的簇或基因,其中1524个在该器官中优先表达。将这1524个基因与人类蛋白质组数据库进行比较,结果表明有476个与先前鉴定的具有不同功能的人类蛋白质相匹配。对这476个基因的序列相似性进行进一步分析表明,有21个基因是参与内分泌系统的候选基因。虽然我们无法检测到激素或肽类候选物,但我们发现了21个基因,如肽配体受体、受体调节蛋白和加工酶。然后,我们对与肽激素前体的内蛋白水解加工相关的海鞘激素原转化酶2(Ci-PC2)和羧肽酶E(Ci-CPE)进行了表征。此外,编码这些转录本的基因在年轻成年海鞘的神经复合体中特异性表达。这些数据为进一步研究海鞘神经复合体的内分泌作用提供了分子基础。